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用于4.5 V锂金属电池的含无氟醚类溶剂的稀释电解质

Dilute Electrolytes with Fluorine-Free Ether Solvents for 4.5 V Lithium Metal Batteries.

作者信息

Yang Yusi, Wang Xiaofang, Zhu Jiacheng, Tan Lulu, Li Nan, Chen Yifan, Wang Linlin, Liu Ziqiang, Yao Xiayin, Wang Xuefeng, Ji Xiao, Zhu Yujie

机构信息

School of Chemistry, Beihang University, Beijing, 100191, P.R. China.

School of Physics, Hubei University, Wuhan, Hubei, 430062, P.R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Oct 1;63(40):e202409193. doi: 10.1002/anie.202409193. Epub 2024 Sep 2.

DOI:10.1002/anie.202409193
PMID:38985085
Abstract

The limited oxidation stability of ether solvents has posed significant challenges for their applications in high-voltage lithium metal batteries (LMBs). To tackle this issue, the prevailing strategy either adopts a high concentration of fluorinated salts or relies on highly fluorinated solvents, which will significantly increase the manufacturing cost and create severe environmental hazards. Herein, an alternative and sustainable salt engineering approach is proposed to enable the utilization of dilute electrolytes consisting of fluorine (F)-free ethers in high-voltage LMBs. The proposed 0.8 M electrolyte supports stable lithium plating-stripping with a high Coulombic efficiency of 99.47 % and effectively mitigates the metal dissolution, phase transition, and gas release issues of the LiNiCoMnO (NCM811) cathode upon charging to high voltages. Consequently, the 4.5 V high-loading Li||NCM 811 cell shows a capacity retention of 75.2 % after 300 cycles. Multimodal experimental characterizations coupled with theoretical investigations demonstrate that the boron-containing salt plays a pivotal role in forming the passivation layers on both anode and cathode. The present simple and cost-effective electrolyte design strategy offers a promising and alternative avenue for using commercially mature, environmentally benign, and low-cost F-free ethers in high-voltage LMBs.

摘要

醚类溶剂有限的氧化稳定性给它们在高压锂金属电池(LMBs)中的应用带来了重大挑战。为了解决这个问题,目前的策略要么采用高浓度的氟化盐,要么依赖于高度氟化的溶剂,这将显著增加制造成本并造成严重的环境危害。在此,我们提出了一种替代性的可持续盐工程方法,以实现高压LMBs中由无氟醚组成的稀电解质的利用。所提出的0.8 M电解质支持稳定的锂电镀-剥离,库仑效率高达99.47%,并有效减轻了LiNiCoMnO(NCM811)正极在充电至高压时的金属溶解、相变和气体释放问题。因此,4.5 V高负载Li||NCM 811电池在300次循环后容量保持率为75.2%。多模态实验表征与理论研究表明,含硼盐在阳极和阴极上形成钝化层方面起着关键作用。目前这种简单且具有成本效益的电解质设计策略为在高压LMBs中使用商业成熟、环境友好且低成本的无氟醚提供了一条有前景的替代途径。

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